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Graph regularized dictionary for single image super-resolution

机译:图形正面字典单图像超分辨率

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Super-resolution (SR) for single image is wild used in image processing areas. The learning-based methods use the co-trained dictionaries which contain low resolution and corresponding high resolution images to conduct SR. In this paper, a new dictionary for SR is proposed which adds the graph information between patches. Simulation results show that our scheme improved the dictionary and outperforms the existing classic SR algorithms in both subjective visually and quantitative evaluations.
机译:单图像的超分辨率(SR)是在图像处理区域中使用的野生。基于学习的方法使用共同训练的词典,其包含低分辨率和相应的高分辨率图像来传导SR。在本文中,提出了一个新的SR字典,它在补丁之间添加了图形信息。仿真结果表明,我们的计划改进了字典,优于两个主观视觉和定量评估的现有经典SR算法。

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